US8405894B2 - Light amount adjustment apparatus having plurality of plate-like light-shielding blade members and method of manufacturing the light-shielding blade members - Google Patents

Light amount adjustment apparatus having plurality of plate-like light-shielding blade members and method of manufacturing the light-shielding blade members Download PDF

Info

Publication number
US8405894B2
US8405894B2 US12/874,733 US87473310A US8405894B2 US 8405894 B2 US8405894 B2 US 8405894B2 US 87473310 A US87473310 A US 87473310A US 8405894 B2 US8405894 B2 US 8405894B2
Authority
US
United States
Prior art keywords
light
shielding blade
shielding
blade member
blasting
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related, expires
Application number
US12/874,733
Other versions
US20110058242A1 (en
Inventor
Junichi Saito
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Canon Inc
Original Assignee
Canon Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Canon Inc filed Critical Canon Inc
Assigned to CANON KABUSHIKI KAISHA reassignment CANON KABUSHIKI KAISHA ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: SAITO, JUNICHI
Publication of US20110058242A1 publication Critical patent/US20110058242A1/en
Application granted granted Critical
Publication of US8405894B2 publication Critical patent/US8405894B2/en
Expired - Fee Related legal-status Critical Current
Adjusted expiration legal-status Critical

Links

Images

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B27/00Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00
    • G02B27/0018Optical systems or apparatus not provided for by any of the groups G02B1/00 - G02B26/00, G02B30/00 with means for preventing ghost images
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B26/00Optical devices or arrangements for the control of light using movable or deformable optical elements
    • G02B26/02Optical devices or arrangements for the control of light using movable or deformable optical elements for controlling the intensity of light
    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B5/00Optical elements other than lenses
    • G02B5/005Diaphragms

Definitions

  • the present invention relates to a light amount adjustment apparatus for use in an image pickup apparatus, and in particular to a light amount adjustment apparatus having a plurality of plate-like light-shielding blade members and a method of manufacturing the light-shielding blade members.
  • image pickup apparatuses such as digital cameras which use a diaphragm unit having light-shielding blade members mounted thereon. It is known that, like other members in an image pickup lens, when the light-shielding blade members cause undesired internal reflection, this results in degradation in image quality such as flare and ghosts. For this reason, surfaces of the light-shielding blade members are coated with a coating for light absorption so as to prevent degradation in image quality.
  • end faces of the light-shielding blade members are formed in a stepwise fine pattern comprised of a plurality of steps or steplessly curved fine pattern by injection molding.
  • resin input pathways provided in a mold for injection molding are formed to be extremely narrow, and it is thus necessary to prevent resin from being uncharged and also prevent burrs from being formed due to excessive charge of resin.
  • injection molding performed to form end faces of light-shielding blade members in a stepwise fine pattern comprised of a plurality of steps or a steplessly curved fine pattern by injection molding is also accompanied with a difficulty in determining injection molding conditions.
  • the present invention provides a light amount adjustment apparatus having light-shielding blade members that can be so manufactured by simple machining as to reduce undesired reflection on end faces of the light-shielding blade members which are parallel with an optical axis and prevent degradation in image quality such as flare and ghosts, and a method of manufacturing the light-shielding blade members.
  • a first aspect of the present invention provides a light amount adjustment apparatus comprising a driving source, and a plurality of light-shielding blade members to which a driving force of the driving source is transmitted to change an aperture diameter, wherein the light-shielding blade members are formed by injection molding of a light-shielding resin material, and wherein by performing blasting on an end face of the light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of the light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.
  • a second aspect of the present invention provides a light amount adjustment apparatus comprising a driving source, and a plurality of light-shielding blade members to which a driving force of the driving source is transmitted to change an aperture diameter, wherein the light-shielding blade members are formed by punching a light-shielding plate material, and wherein by performing blasting on an end face of the light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of the light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.
  • a third aspect of the present invention provides a method of manufacturing a light-shielding blade member, comprising a step of performing injection molding of a light-shielding resin material, a step of fixing, on a fixing member, a light-shielding blade member formed by injection molding of the resin material in the injection molding step, and a step of performing blasting on an end face of the fixed light-shielding blade member in a part that forms an aperture diameter, wherein when fixing, on the fixing member, the light-shielding blade member formed by injection molding, the light-shielding blade member formed by injection molding is fixed on the fixing member such that the fixing member is exposed outside the part of the light-shielding blade member formed by injection molding which forms the aperture diameter.
  • a fourth aspect of the present invention provides a method of manufacturing a light-shielding blade member, comprising a step of punching a light-shielding plate material, a step of fixing, on a fixing member, a light-shielding blade member formed by punching the plate material in the pinching step, and a step of performing blasting on an end face of a part of the fixed light-shielding blade member which forms an aperture diameter, wherein when fixing, on the fixing member, the light-shielding blade member formed by punching, the light-shielding blade member formed by punching is fixed on the fixing member such that the fixing member is exposed outside the part of the light-shielding blade member formed by punching which forms the aperture diameter.
  • a light amount adjustment apparatus having light-shielding blade members that can be so manufactured by simple machining as to reduce undesired reflection on end faces of the light-shielding blade members which are parallel with the optical axis and prevent degradation in image quality such as flare and ghosts, and a method of manufacturing the light-shielding blade members.
  • FIG. 1 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to a first embodiment of the present invention.
  • FIG. 2 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
  • FIG. 3 is a view showing the light-shielding blade member cut along line A-A of FIG. 2 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
  • FIG. 4A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the first embodiment cut along line A-A of FIG. 2 in a state before blasting as post-processing
  • FIG. 4B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
  • FIG. 5 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to a second embodiment of the present invention.
  • FIG. 6 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
  • FIG. 7 is a view showing the light-shielding blade member cut along line A-A of FIG. 6 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
  • FIG. 8A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the second embodiment cut along line A-A of FIG. 6 in a state before blasting as post-processing
  • FIG. 8B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
  • FIGS. 1 to 4B A first embodiment of the present invention will now be described with reference to FIGS. 1 to 4B .
  • FIG. 1 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to the first embodiment.
  • FIG. 2 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
  • FIG. 3 is a view showing the light-shielding blade member cut along line A-A of FIG. 2 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
  • FIG. 4A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the first embodiment cut along line A-A of FIG. 2 in a state before blasting as post-processing
  • FIG. 4B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
  • reference numerals 1 , 2 , 3 , 4 , 5 , and 6 designate respective ones of a plurality of light-shielding blade members provided in the light amount adjustment apparatus and having basically the same arrangements.
  • the light-shielding blade members 1 to 6 have sheet-like light-shielding blade base portions 1 a to 6 a for controlling the amount of aperture. Further, the light-shielding blade members 1 to 6 have first shaft portions 1 b to 6 b provided on one sides of the blade base portions, and second shaft portions 1 c to 6 c provided on the other sides of the blade base portions (partially not shown).
  • a reference numeral 7 designates a ring-shaped rotary member with an aperture 7 a formed in the middle.
  • the rotary member 7 is provided with shaft hole portions 7 b , 7 c , 7 d , 7 e , 7 f , and 7 g , six-parted rotation fit projecting portions 7 h , and a gear portion 7 i.
  • a reference numeral 8 designates a ring-shaped cam member with an aperture 8 a formed in the middle.
  • the cam member 8 is provided with cam groove portions 8 b , 8 c , 8 d , 8 e , 8 f , and 8 g.
  • a reference numeral 9 designates a ring-shaped pressing member with an aperture 9 a formed in the middle.
  • the pressing member 9 is provided with a hole portion 9 b and a motor mounting portion 9 c.
  • a reference numeral 10 designates a stepping motor that drives the rotary member 7 .
  • a pinion gear 11 is fixed to a distal end of a shaft of the stepping motor 10 .
  • the stepping motor 10 is mounted on the motor mounting portion 9 c of the pressing member 9 .
  • the pinion gear 11 is extended out through the hole portion 9 b of the pressing member 9 and engaged with the gear portion 7 i of the rotary member 7 .
  • the pressing member 9 is fixed to the cam member 8 with the rotary member 7 and the light-shielding blade members 1 to 6 interposed therebetween.
  • the pressing member 9 prevents the rotary member 7 and the light-shielding blade members 1 to 6 from falling off in the direction of the optical axis.
  • the rotation fit projecting portions 7 h of the rotary member 7 are fitted into and rotatably supported by the aperture 9 a of the pressing member 9 .
  • the first shaft portions 1 b to 6 b of the light-shielding blade members 1 to 6 are rotatably supported by the respective shaft hole portions 7 b to 7 g of the rotary member 7 .
  • the second shaft portions 1 c to 6 c of the light-shielding blade members 1 to 6 are slidably supported by the respective cam groove portions 8 b to 8 g of the cam member 8 .
  • the light-shielding blade members 1 to 6 are spaced equidistantly in a circumferential direction around the optical axis.
  • the light-shielding blade members 1 to 6 are so configured as to be capable of controlling the aperture opening amount by changing states of overlapping of the light-shielding blade base portions 1 a to 6 a , and the greater the amount of overlapping, the smaller the aperture opening amount.
  • the aperture opening diameter is changed to adjust the amount of light.
  • the pinion gear 11 rotates.
  • the rotary member 7 rotates to rotatively drive the first shaft portions 1 b to 6 b of the light-shielding blade members 1 to 6 about the optical axis.
  • the second shaft portions 1 c to 6 c are moved along the cam groove portions 8 b to 8 g of the cam member 8 .
  • This operation causes the second shaft portions 1 c to 6 c to relatively rotate about the shaft hole portions 7 b to 7 g of the rotary member 7 , whereby the amount of entry into the aperture 8 is changed.
  • the six light-shielding blade members 1 to 6 operate to change the aperture opening diameter at the same time in synchronization with the rotary member 7 .
  • the aperture opening diameter is continuously changed from a retracted state in which the light-shielding blade members 1 to 6 are retracted from the aperture 8 a of the cam member 8 to an inserted state in which the light-shielding blade members 1 to 6 are inserted into the aperture 8 a of the cam member 8 .
  • the aperture opening diameter is changed to adjust the amount of light.
  • the light-shielding blade members 1 to 6 are formed by injection molding of a resin material in which an additive such as carbon black for making the resin material light-shielding is mixed as appropriate.
  • the first shaft portion 1 b and the second shaft portion 1 c appearing in FIG. 1 are formed integrally with the blade base portion 1 a .
  • blasting as post-processing is performed on a light-shielding blade member end portion 1 d , which is a portion forming an aperture diameter of the light-shielding blade members 1 to 6 .
  • blasting performed here is a process in which nonmetallic particles or metallic particles are caused to collide with the light-shielding blade member end portion 1 d as a material to be cut so that the light-shielding blade member end portion 1 d can be surface-roughened or lightly cut.
  • blasting is performed using wet blasting.
  • Wet blasting is a machining method that surface roughening or light cutting is performed by projecting nonmetallic particles or metallic particles using spray droplets formed by applying the pressure of compressed air or the like to a liquid such as water.
  • the light-shielding blade member 1 as a material to be cut is fixed on a plane of a fixing jig 12 such that a beam incidence plane of the light-shielding blade member 1 is faced up as shown in FIG. 3 .
  • the plane of the fixing jig 12 on which the light-shielding blade members 1 is fixed is exposed outside the light-shielding blade member end portion 1 d of the light-shielding blade members 1 .
  • the direction indicated by the arrow B is a direction that is tilted at a predetermined angle from a direction perpendicular to the plane of the fixing jig 12 to a direction in which the plane of the fixing jig 12 is exposed.
  • an oblique portion 1 f that has been surface-roughened and tilted relative to the optical axis is formed by machining as shown in FIG. 4B .
  • a light-shielding blade end face 1 g as an aperture end face so formed as to be parallel with the optical axis is fabricated in a part corresponding to the inner periphery of the aperture through which light can pass.
  • the oblique portion if which is so formed as to be extended out from the light-shielding blade end face 1 g in a manner being tilted relative to the optical axis is fabricated in a part corresponding to the inner periphery of the aperture through which light can pass.
  • the region A shown in FIG. 3 is a region that is not subjected to blasting during machining by blasting using wet blasting. Specifically, this region that is not subjected to blasting is the corner part formed by the light-shielding blade end face 1 e and the plane of the fixing jig 12 . This region is not subjected to blasting because the flow rate of spray droplets projecting nonmetallic particles or metallic particles is low, and the power of machining on the light-shielding blade end face 1 e is low.
  • the light-shielding blade member end portion 1 d After undergoing blasting shown in FIG. 3 , the light-shielding blade member end portion 1 d has a form partially cut away by blasting as shown in FIG. 4B . Specifically, in the part of the light-shielding blade member end portion 1 d which corresponds to the inner periphery of the aperture through which light can pass, the oblique portion 1 f is newly formed in a range between the plane of the blade base portion 1 a and the light-shielding blade end face 1 e .
  • the light-shielding blade end face 1 g that is a part of the light-shielding blade end face 1 e is newly formed.
  • the light-shielding blade end face ⁇ 1 g has a shape formed with low machining power resulting from a low flow rate of spray droplets in the region A in FIG. 3 .
  • the newly formed light-shielding blade end face 1 g substantially maintains the outside dimensions of the blade base portion 1 a . Namely, in the case where blasting is performed as shown in FIG. 3 , a desired shape shown in FIG. 4B can be obtained without loss of the dimensional accuracy of the light-shielding blade member end portion 1 e.
  • blasting has a surface roughing effect.
  • the oblique portion 1 f formed in the part corresponding to the inner periphery of the aperture through which light can pass and the light-shielding blade end face 1 g are each surface-roughened as distinct from the properties of the light-shielding blade end face 1 e that was a smooth surface before blasting.
  • the light-shielding blade end face 1 e before blasting is also a plane that, when assembled as it is into the light amount adjustment apparatus, causes ghosts, flare, and so on because it is parallel with the optical axis and acts as a reflection surface for undesired light.
  • the light-shielding blade members 2 to 6 are formed similarly to the above described light-shielding blade member 1 and incorporated into the light amount adjustment apparatus according to the first embodiment.
  • the light-shielding blade end face 1 g smaller than the light-shielding blade end face 1 e as a smooth surface parallel with the optical axis and having the surface thereof roughened is newly formed.
  • FIG. 5 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to the second embodiment.
  • FIG. 6 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
  • FIG. 7 is a view showing the light-shielding blade member cut along line A-A of FIG. 6 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
  • FIG. 8A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the second embodiment cut along line A-A of FIG. 6 in a state before blasting as post-processing
  • FIG. 8B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
  • reference numerals 21 , 22 , 23 , 24 , 25 , and 26 designate respective ones of a plurality of light-shielding blade members provided in the light amount adjustment apparatus and having basically the same arrangements.
  • the light-shielding blade members 21 to 26 have light-shielding blade base portions 21 a to 26 a for controlling the amount of aperture, which are formed into sheet shapes by punching a light-shielding plate material.
  • the light-shielding blade members 21 to 26 have first shaft portions 21 b to 26 b provided on one sides of the blade base portions, and second shaft portions 21 c to 26 c provided on the other sides of the blade base portions (partially not shown).
  • the first shaft portions 21 b to 26 b and the second shaft portions 21 c to 26 c are formed in a separate step (for example, by outsert molding) from a step in which the blade base portion 21 a is formed.
  • a reference numeral 27 designates a ring-shaped rotary member with an aperture 27 a formed in the middle.
  • the rotary member 27 is provided with shaft hole portions 27 b , 27 c , 27 d , 27 e , 27 f , and 27 g , six-parted rotation fit projecting portions 27 h , and a gear portion 27 i.
  • a reference numeral 28 designates a ring-shaped cam member with an aperture 28 a formed in the middle.
  • the cam member 28 is provided with cam groove portions 28 b , 28 c , 28 d , 28 e , 28 f , and 28 g.
  • a reference numeral 29 designates a ring-shaped pressing member with an aperture 29 a formed in the middle.
  • the pressing member 29 is provided with a hole portion 29 b and a motor mounting portion 29 c.
  • a reference numeral 210 designates a stepping motor that drives the rotary member 27 .
  • a pinion gear 211 is fixed to a distal end of a shaft of the stepping motor 210 .
  • the stepping motor 210 is mounted on the motor mounting portion 29 c of the pressing member 29 .
  • the pinion gear 11 is extended out through the hole portion 29 b of the pressing member 29 and engaged with the gear portion 27 i of the rotary member 27 .
  • the pressing member 29 is fixed to the cam member 28 with the rotary member 27 and the light-shielding blade members 21 to 26 interposed therebetween.
  • the pressing member 29 prevents the rotary member 27 and the light-shielding blade members 21 to 26 from falling off in the direction of the optical axis.
  • the rotation fit projecting portions 27 h of the rotary member 27 are engaged with and rotatably supported by the aperture 29 a of the pressing member 29 .
  • the first shaft portions 21 b to 26 b of the light-shielding blade members 21 to 26 are rotatably supported by the respective shaft hole portions 27 b to 27 g of the rotary member 27 .
  • the second shaft portions 21 c to 26 c of the light-shielding blade members 21 to 26 are slidably supported by the respective cam groove portions 28 b to 28 g of the cam member 28 .
  • the light-shielding blade members 21 to 26 are spaced equidistantly in a circumferential direction around the optical axis.
  • the light-shielding blade members 21 to 26 are so configured as to be capable of controlling the aperture opening amount by changing states of overlapping of the light-shielding blade base portions 21 a to 26 a , and the greater the amount of overlapping, the smaller the aperture opening amount.
  • the aperture opening diameter is changed to adjust the amount of light.
  • the pinion gear 211 rotates.
  • the rotary member 27 rotates to rotatively drive the first shaft portions 21 b to 26 b of the light-shielding blade members 21 to 26 about the optical axis.
  • the six light-shielding blade members 21 to 26 operate to change the aperture opening diameter at the same time in synchronization with the rotary member 27 .
  • the aperture opening diameter is continuously changed from a retracted state in which the light-shielding blade members 21 to 26 are retracted from the aperture 28 a of the cam member 28 to an inserted state in which the light-shielding blade members 21 to 26 are inserted into the aperture 28 a of the cam member 28 .
  • the aperture opening diameter is changed to adjust the amount of light.
  • a base material for the blade base portions 21 a to 26 a of the light-shielding blade members 21 to 26 is a resin material such as polyethylene terephthalate, and they are formed by punching a thin flat plate material in which an additive such as carbon black is mixed as appropriate so as to make the blade base portions 21 a to 26 a light-shielding.
  • blasting performed here is a process in which nonmetallic particles or metallic particles are caused to collide with the light-shielding blade member end portion 21 d as a material to be cut so that the light-shielding blade member end portion 21 d can be surface-roughened or lightly cut.
  • blasting is performed using wet blasting.
  • Wet blasting is a machining method that surface roughening or light cutting is performed by projecting nonmetallic particles or metallic particles using spray droplets formed by applying the pressure of compressed air or the like to a liquid such as water.
  • the blade base portion 21 a as a material to be cut is fixed on a plane of a fixing jig 212 such that a beam incidence plane of the light-shielding blade member 21 is faced up as shown in FIG. 7 .
  • the plane of the fixing jig 212 on which the light-shielding blade member 21 is fixed is exposed outside the light-shielding blade member end portion 21 d of the light-shielding blade members 21 .
  • the direction indicated by the arrow B is a direction that is tilted at a predetermined angle from a direction perpendicular to the plane of the fixing jig 212 to a direction in which the plane of the fixing jig 212 is exposed.
  • the blade base portion 21 a is formed by punching, a burr 21 h formed due to a shearing force on one side of a punching end face in a part of the light-shielding blade member end portion 21 d which corresponds to the inner periphery of the aperture through which light can pass.
  • the blade base portion 21 a is fixed on the fixing jib 212 in such an orientation that the burr 21 h in the part of the light-shielding blade member end portion 21 d which corresponds to the inner periphery of the aperture through which light can pass is cut away.
  • the light-shielding blade member end portion 21 d of the light-shielding blade members 21 to 26 is formed with an oblique portion 21 f that has the surface thereof roughened and is tilted relative to the optical axis as shown in FIG. 8B by machining. Also, the burr 21 h is cut away.
  • the burrs 21 h to 26 h formed during punching can be removed at the same time.
  • the region A shown in FIG. 7 is a region that is not subjected to blasting during machining by blasting using wet blasting. This is because in the corner part formed by the end face 21 e of the blade base portion and the plane of the fixing jib 212 , the flow rate of spray droplets projecting abrasives such as nonmetallic particles and metallic particles is low, and the power of machining on the light-shielding blade end face 21 e is low.
  • This region that is not subjected to blasting is the corner part formed by the light-shielding blade end face 21 e and the plane of the fixing jig 212 .
  • This region is not subjected to blasting because the flow rate of spray droplets projecting nonmetallic particles or metallic particles is low, and the power of machining on the light-shielding blade end face 21 e is low.
  • the light-shielding blade member end portion 21 d After undergoing blasting shown in FIG. 7 , the light-shielding blade member end portion 21 d has a form partially cut away by blasting as shown in FIG. 8B . Specifically, in the part of the light-shielding blade member end portion 21 d , the oblique portion 21 f is newly formed in a range between the plane of the blade base portion 21 a and the light-shielding blade end face 21 e . At the same time, in the part of the light-shielding blade member end portion 21 d , the light-shielding blade end face 21 g that is a part of the light-shielding blade end face 21 e is newly formed.
  • the light-shielding blade end face 21 e has a shape formed with low machining power resulting from a low flow rate of spray droplets in the region A in FIG. 7 .
  • the newly formed light-shielding blade end face 21 g substantially maintains the outside dimensions of the blade base portion 21 a . Namely, in the case where blasting is performed as shown in FIG. 7 , a desired shape shown in FIG. 8B can be obtained without loss of the dimensional accuracy of the light-shielding blade end face 21 e.
  • both the oblique portion 21 f and the newly formed light-shielding blade end face 21 g have the surfaces thereof roughened as distinct from the properties of the light-shielding blade end face 21 e that was a smooth surface before blasting.
  • the light-shielding blade end face 21 e before blasting is also a plane that, when assembled as it is into the light amount adjustment apparatus, causes ghosts, flare, and so on because it is parallel with the optical axis and acts as a reflection surface for undesired light.
  • the blade base portion 21 a becomes the light-shielding blade member 21 after undergoing a step in which the first shaft portion 21 b and the second shaft portion 21 c are formed.
  • the light-shielding blade members 22 to 26 are formed similarly to the above described light-shielding blade member 21 and incorporated into the light amount adjustment apparatus according to the second embodiment.
  • the blade base portion end face 21 g parallel with the optical axis and located in the aperture formed by the light-shielding blade members 21 to 26 subjected to blasting is relatively small and has the surface thereof roughened. Namely, the blade base portion end face 21 g is smaller than the blade base portion end face 21 e as a smooth surface before machining, and has the surface thereof roughened. For this reason, in the light adjustment apparatus, undesired reflection on the light-shielding blade end faces which could cause degradation in image quality such as flare and ghosts can be reduced.
  • burrs 21 h to 26 h formed when the blade base portions 21 a to 26 a are formed by punching can also be processed at the same time by blasting.

Landscapes

  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Diaphragms For Cameras (AREA)
  • Shutters For Cameras (AREA)

Abstract

A light amount adjustment apparatus having a plurality of light-shielding blade members that can be so manufactured by simple machining as to reduce undesired reflection on end faces of the light-shielding blade members which are parallel with the optical axis and prevent degradation in image quality such as flare and ghosts. A driving force of a stepping motor is transmitted to the light-shielding blade members so that an aperture diameter can be changed. The light-shielding blade members are formed by injection molding of a light-shielding resin material. By performing blasting on an end face of each light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of the light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.

Description

BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates to a light amount adjustment apparatus for use in an image pickup apparatus, and in particular to a light amount adjustment apparatus having a plurality of plate-like light-shielding blade members and a method of manufacturing the light-shielding blade members.
2. Description of the Related Art
Generally, there are image pickup apparatuses such as digital cameras which use a diaphragm unit having light-shielding blade members mounted thereon. It is known that, like other members in an image pickup lens, when the light-shielding blade members cause undesired internal reflection, this results in degradation in image quality such as flare and ghosts. For this reason, surfaces of the light-shielding blade members are coated with a coating for light absorption so as to prevent degradation in image quality.
Also, it is known that in a diaphragm unit having light-shielding blade members, degradation in image quality such as ghosts occurs due to reflection on end faces of the light-shielding blade members which form an aperture and are parallel with an optical axis. For this reason, the end faces of the light-shielding blade members are also coated with a coating for light absorption, or the end faces of the light-shielding blade members are formed into complicated shapes so as to prevent degradation in image quality.
For example, there has been proposed a means for making end faces of light-shielding blade members which form an aperture thin-walled to a sufficient degree by injection molding so as to prevent internal reflection on the end faces (see, for example, Japanese Laid-Open Patent Publication (Kokai) No. 2006-84658).
Also, there has been proposed a means for forming end faces of light-shielding blade members which form an aperture in a stepwise or steplessly curved pattern to make the end faces of the light-shielding blade members thin-walled to the extent possible so that regions causing harmful back reflection in the end faces of the light-shielding blade members which form the aperture and are parallel with the optical axis can be reduced so as to reduce degradation in image quality such as flare and ghosts (see, for example, Japanese Laid-Open Patent Publication (Kokai) No. 2002-229095).
However, when light-shielding blade members are formed by injection molding, it is necessary to make end faces of the light-shielding blade members thin-walled so that the end faces of the light-shielding blade members can be small. To this end, resin input pathways provided in a mold for injection molding are formed to be extremely narrow, and it is thus necessary to prevent resin from being uncharged and also prevent burrs from being formed due to excessive charge of resin. For this reason, injection molding performed so as to make end faces of light-shielding blade members thin-walled is accompanied with a difficulty in determining injection molding conditions.
Further, when light-shielding blade members are formed by injection molding, end faces of the light-shielding blade members are formed in a stepwise fine pattern comprised of a plurality of steps or steplessly curved fine pattern by injection molding. To this end, resin input pathways provided in a mold for injection molding are formed to be extremely narrow, and it is thus necessary to prevent resin from being uncharged and also prevent burrs from being formed due to excessive charge of resin. For this reason, injection molding performed to form end faces of light-shielding blade members in a stepwise fine pattern comprised of a plurality of steps or a steplessly curved fine pattern by injection molding is also accompanied with a difficulty in determining injection molding conditions.
SUMMARY OF THE INVENTION
The present invention provides a light amount adjustment apparatus having light-shielding blade members that can be so manufactured by simple machining as to reduce undesired reflection on end faces of the light-shielding blade members which are parallel with an optical axis and prevent degradation in image quality such as flare and ghosts, and a method of manufacturing the light-shielding blade members.
Accordingly, a first aspect of the present invention provides a light amount adjustment apparatus comprising a driving source, and a plurality of light-shielding blade members to which a driving force of the driving source is transmitted to change an aperture diameter, wherein the light-shielding blade members are formed by injection molding of a light-shielding resin material, and wherein by performing blasting on an end face of the light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of the light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.
Accordingly, a second aspect of the present invention provides a light amount adjustment apparatus comprising a driving source, and a plurality of light-shielding blade members to which a driving force of the driving source is transmitted to change an aperture diameter, wherein the light-shielding blade members are formed by punching a light-shielding plate material, and wherein by performing blasting on an end face of the light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of the light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.
Accordingly, a third aspect of the present invention provides a method of manufacturing a light-shielding blade member, comprising a step of performing injection molding of a light-shielding resin material, a step of fixing, on a fixing member, a light-shielding blade member formed by injection molding of the resin material in the injection molding step, and a step of performing blasting on an end face of the fixed light-shielding blade member in a part that forms an aperture diameter, wherein when fixing, on the fixing member, the light-shielding blade member formed by injection molding, the light-shielding blade member formed by injection molding is fixed on the fixing member such that the fixing member is exposed outside the part of the light-shielding blade member formed by injection molding which forms the aperture diameter.
Accordingly, a fourth aspect of the present invention provides a method of manufacturing a light-shielding blade member, comprising a step of punching a light-shielding plate material, a step of fixing, on a fixing member, a light-shielding blade member formed by punching the plate material in the pinching step, and a step of performing blasting on an end face of a part of the fixed light-shielding blade member which forms an aperture diameter, wherein when fixing, on the fixing member, the light-shielding blade member formed by punching, the light-shielding blade member formed by punching is fixed on the fixing member such that the fixing member is exposed outside the part of the light-shielding blade member formed by punching which forms the aperture diameter.
According to the present invention, there can be provided a light amount adjustment apparatus having light-shielding blade members that can be so manufactured by simple machining as to reduce undesired reflection on end faces of the light-shielding blade members which are parallel with the optical axis and prevent degradation in image quality such as flare and ghosts, and a method of manufacturing the light-shielding blade members.
Further features of the present invention will become apparent from the following description of exemplary embodiments (with reference to the attached drawings).
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to a first embodiment of the present invention.
FIG. 2 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
FIG. 3 is a view showing the light-shielding blade member cut along line A-A of FIG. 2 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
FIG. 4A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the first embodiment cut along line A-A of FIG. 2 in a state before blasting as post-processing, and FIG. 4B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
FIG. 5 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to a second embodiment of the present invention.
FIG. 6 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
FIG. 7 is a view showing the light-shielding blade member cut along line A-A of FIG. 6 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
FIG. 8A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the second embodiment cut along line A-A of FIG. 6 in a state before blasting as post-processing, and FIG. 8B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
DESCRIPTION OF THE EMBODIMENTS
A first embodiment of the present invention will now be described with reference to FIGS. 1 to 4B.
FIG. 1 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to the first embodiment.
FIG. 2 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
FIG. 3 is a view showing the light-shielding blade member cut along line A-A of FIG. 2 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the first embodiment.
FIG. 4A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the first embodiment cut along line A-A of FIG. 2 in a state before blasting as post-processing, and FIG. 4B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
In FIG. 1, reference numerals 1, 2, 3, 4, 5, and 6 designate respective ones of a plurality of light-shielding blade members provided in the light amount adjustment apparatus and having basically the same arrangements. The light-shielding blade members 1 to 6 have sheet-like light-shielding blade base portions 1 a to 6 a for controlling the amount of aperture. Further, the light-shielding blade members 1 to 6 have first shaft portions 1 b to 6 b provided on one sides of the blade base portions, and second shaft portions 1 c to 6 c provided on the other sides of the blade base portions (partially not shown).
Moreover, in FIG. 1, a reference numeral 7 designates a ring-shaped rotary member with an aperture 7 a formed in the middle. The rotary member 7 is provided with shaft hole portions 7 b, 7 c, 7 d, 7 e, 7 f, and 7 g, six-parted rotation fit projecting portions 7 h, and a gear portion 7 i.
In FIG. 1, a reference numeral 8 designates a ring-shaped cam member with an aperture 8 a formed in the middle. The cam member 8 is provided with cam groove portions 8 b, 8 c, 8 d, 8 e, 8 f, and 8 g.
In FIG. 1, a reference numeral 9 designates a ring-shaped pressing member with an aperture 9 a formed in the middle. The pressing member 9 is provided with a hole portion 9 b and a motor mounting portion 9 c.
In FIG. 1, a reference numeral 10 designates a stepping motor that drives the rotary member 7. A pinion gear 11 is fixed to a distal end of a shaft of the stepping motor 10. The stepping motor 10 is mounted on the motor mounting portion 9 c of the pressing member 9. The pinion gear 11 is extended out through the hole portion 9 b of the pressing member 9 and engaged with the gear portion 7 i of the rotary member 7.
In the light amount adjustment apparatus, the pressing member 9 is fixed to the cam member 8 with the rotary member 7 and the light-shielding blade members 1 to 6 interposed therebetween. Thus, the pressing member 9 prevents the rotary member 7 and the light-shielding blade members 1 to 6 from falling off in the direction of the optical axis.
In the light amount adjustment apparatus, the rotation fit projecting portions 7 h of the rotary member 7 are fitted into and rotatably supported by the aperture 9 a of the pressing member 9. The first shaft portions 1 b to 6 b of the light-shielding blade members 1 to 6 are rotatably supported by the respective shaft hole portions 7 b to 7 g of the rotary member 7. Further, the second shaft portions 1 c to 6 c of the light-shielding blade members 1 to 6 are slidably supported by the respective cam groove portions 8 b to 8 g of the cam member 8.
In the light amount adjustment apparatus, the light-shielding blade members 1 to 6 are spaced equidistantly in a circumferential direction around the optical axis. The light-shielding blade members 1 to 6 are so configured as to be capable of controlling the aperture opening amount by changing states of overlapping of the light-shielding blade base portions 1 a to 6 a, and the greater the amount of overlapping, the smaller the aperture opening amount.
In the light amount adjustment apparatus, by controlling the operation of the stepping motor 10, the aperture opening diameter is changed to adjust the amount of light.
Thus, in the light amount adjustment apparatus, when a control unit, not shown, drives the stepping motor 10, the pinion gear 11 rotates. In response to the rotation of the pinion gear 11, the rotary member 7 rotates to rotatively drive the first shaft portions 1 b to 6 b of the light-shielding blade members 1 to 6 about the optical axis.
With this operation, the second shaft portions 1 c to 6 c are moved along the cam groove portions 8 b to 8 g of the cam member 8. This operation causes the second shaft portions 1 c to 6 c to relatively rotate about the shaft hole portions 7 b to 7 g of the rotary member 7, whereby the amount of entry into the aperture 8 is changed.
The six light-shielding blade members 1 to 6 operate to change the aperture opening diameter at the same time in synchronization with the rotary member 7. In this operation in which the aperture opening diameter is changed, the aperture opening diameter is continuously changed from a retracted state in which the light-shielding blade members 1 to 6 are retracted from the aperture 8 a of the cam member 8 to an inserted state in which the light-shielding blade members 1 to 6 are inserted into the aperture 8 a of the cam member 8. In the above described way, in the light amount adjustment apparatus, by controlling the operation of the stepping motor 10, the aperture opening diameter is changed to adjust the amount of light.
Next, a method of manufacturing the light-shielding blade members according to the first embodiment will be described.
The light-shielding blade members 1 to 6 are formed by injection molding of a resin material in which an additive such as carbon black for making the resin material light-shielding is mixed as appropriate. In the injection molding, the first shaft portion 1 b and the second shaft portion 1 c appearing in FIG. 1 are formed integrally with the blade base portion 1 a. For the light-shielding blade members 1 to 6 thus formed by the injection molding, blasting as post-processing is performed on a light-shielding blade member end portion 1 d, which is a portion forming an aperture diameter of the light-shielding blade members 1 to 6.
It should be noted that blasting performed here is a process in which nonmetallic particles or metallic particles are caused to collide with the light-shielding blade member end portion 1 d as a material to be cut so that the light-shielding blade member end portion 1 d can be surface-roughened or lightly cut. Particularly in the present embodiment, blasting is performed using wet blasting. Wet blasting is a machining method that surface roughening or light cutting is performed by projecting nonmetallic particles or metallic particles using spray droplets formed by applying the pressure of compressed air or the like to a liquid such as water.
To perform blasting as post-processing on the light-shielding blade member end portion 1 d of the light-shielding blade members 1 to 6, first, the light-shielding blade member 1 as a material to be cut is fixed on a plane of a fixing jig 12 such that a beam incidence plane of the light-shielding blade member 1 is faced up as shown in FIG. 3. On this occasion, the plane of the fixing jig 12 on which the light-shielding blade members 1 is fixed is exposed outside the light-shielding blade member end portion 1 d of the light-shielding blade members 1. As a result, a corner part indicated as a region A in FIG. 3 is formed by a light-shielding blade end face 1 e and the plane of the fixing jig 12. Blasting is then performed in which spray droplets containing nonmetallic particles or metallic particles are sprayed obliquely downward in a direction indicated by an arrow B in FIG. 3 at high pressure onto the light-shielding blade member end portion 1 d so that the light-shielding blade member end portion 1 d can be surface-roughened or lightly cut. Here, the direction indicated by the arrow B is a direction that is tilted at a predetermined angle from a direction perpendicular to the plane of the fixing jig 12 to a direction in which the plane of the fixing jig 12 is exposed.
In the light-shielding blade member end portion 1 d of the light-shielding blade members 1 to 6 fabricated by performing blasting using wet blasting, an oblique portion 1 f that has been surface-roughened and tilted relative to the optical axis is formed by machining as shown in FIG. 4B. Namely, in the light-shielding blade member end portion 1 d, a light-shielding blade end face 1 g as an aperture end face so formed as to be parallel with the optical axis is fabricated in a part corresponding to the inner periphery of the aperture through which light can pass. Also, in the light-shielding blade member end portion 1 d, the oblique portion if which is so formed as to be extended out from the light-shielding blade end face 1 g in a manner being tilted relative to the optical axis is fabricated in a part corresponding to the inner periphery of the aperture through which light can pass.
In the case where the light-shielding blade member end portion 1 d is machined into the oblique portion 1 f having the surface thereof roughened and tilted relative to the optical axis in the above described way, undesired light can be prevented from being reflected and causing ghosts, flare, and so on.
Moreover, the region A shown in FIG. 3 is a region that is not subjected to blasting during machining by blasting using wet blasting. Specifically, this region that is not subjected to blasting is the corner part formed by the light-shielding blade end face 1 e and the plane of the fixing jig 12. This region is not subjected to blasting because the flow rate of spray droplets projecting nonmetallic particles or metallic particles is low, and the power of machining on the light-shielding blade end face 1 e is low.
After undergoing blasting shown in FIG. 3, the light-shielding blade member end portion 1 d has a form partially cut away by blasting as shown in FIG. 4B. Specifically, in the part of the light-shielding blade member end portion 1 d which corresponds to the inner periphery of the aperture through which light can pass, the oblique portion 1 f is newly formed in a range between the plane of the blade base portion 1 a and the light-shielding blade end face 1 e. At the same time, in the part of the light-shielding blade member end portion 1 d which corresponds to the inner periphery of the aperture through which light can pass, the light-shielding blade end face 1 g that is a part of the light-shielding blade end face 1 e is newly formed.
The light-shielding blade end face −1 g has a shape formed with low machining power resulting from a low flow rate of spray droplets in the region A in FIG. 3. The newly formed light-shielding blade end face 1 g substantially maintains the outside dimensions of the blade base portion 1 a. Namely, in the case where blasting is performed as shown in FIG. 3, a desired shape shown in FIG. 4B can be obtained without loss of the dimensional accuracy of the light-shielding blade member end portion 1 e.
Moreover, blasting has a surface roughing effect. Thus, the oblique portion 1 f formed in the part corresponding to the inner periphery of the aperture through which light can pass and the light-shielding blade end face 1 g are each surface-roughened as distinct from the properties of the light-shielding blade end face 1 e that was a smooth surface before blasting. It should be noted that the light-shielding blade end face 1 e before blasting is also a plane that, when assembled as it is into the light amount adjustment apparatus, causes ghosts, flare, and so on because it is parallel with the optical axis and acts as a reflection surface for undesired light.
Moreover, the light-shielding blade members 2 to 6 are formed similarly to the above described light-shielding blade member 1 and incorporated into the light amount adjustment apparatus according to the first embodiment.
In the aperture formed by the light-shielding blade members 2 to 6 subjected to blasting described above, the light-shielding blade end face 1 g smaller than the light-shielding blade end face 1 e as a smooth surface parallel with the optical axis and having the surface thereof roughened is newly formed.
For this reason, in the aperture formed by the light-shielding blade members 1 to 6 subjected to blasting, undesired reflection on the light-shielding blade end faces which could cause degradation in image quality such as flare and ghosts can be reduced. Moreover, according to the above arrangement of the light-shielding blade members 1 to 6, there is no need to prepare molds having complicated shapes when forming the light-shielding blade members 1 to 6 by injection molding, and hence the ease of mold release can be enhanced.
Next, a second embodiment of the present invention will now be described with reference to FIGS. 5 to 8B.
FIG. 5 is an exploded perspective view schematically showing essential constituent members of a light amount adjustment apparatus according to the second embodiment.
FIG. 6 is a plan view showing a light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
FIG. 7 is a view showing the light-shielding blade member cut along line A-A of FIG. 6 so as to explain a method of performing blasting on an end portion of the light-shielding blade member for use in the light amount adjustment apparatus according to the second embodiment.
FIG. 8A is an enlarged cross-sectional view showing the end portion of the light-shielding blade member according to the second embodiment cut along line A-A of FIG. 6 in a state before blasting as post-processing, and FIG. 8B is an enlarged cross-sectional view showing the end portion of the light-shielding blade member in a state after blasting.
In FIG. 5, reference numerals 21, 22, 23, 24, 25, and 26 designate respective ones of a plurality of light-shielding blade members provided in the light amount adjustment apparatus and having basically the same arrangements. The light-shielding blade members 21 to 26 have light-shielding blade base portions 21 a to 26 a for controlling the amount of aperture, which are formed into sheet shapes by punching a light-shielding plate material. Further, the light-shielding blade members 21 to 26 have first shaft portions 21 b to 26 b provided on one sides of the blade base portions, and second shaft portions 21 c to 26 c provided on the other sides of the blade base portions (partially not shown). The first shaft portions 21 b to 26 b and the second shaft portions 21 c to 26 c are formed in a separate step (for example, by outsert molding) from a step in which the blade base portion 21 a is formed.
Moreover, in FIG. 5, a reference numeral 27 designates a ring-shaped rotary member with an aperture 27 a formed in the middle. The rotary member 27 is provided with shaft hole portions 27 b, 27 c, 27 d, 27 e, 27 f, and 27 g, six-parted rotation fit projecting portions 27 h, and a gear portion 27 i.
In FIG. 5, a reference numeral 28 designates a ring-shaped cam member with an aperture 28 a formed in the middle. The cam member 28 is provided with cam groove portions 28 b, 28 c, 28 d, 28 e, 28 f, and 28 g.
In FIG. 5, a reference numeral 29 designates a ring-shaped pressing member with an aperture 29 a formed in the middle. The pressing member 29 is provided with a hole portion 29 b and a motor mounting portion 29 c.
In FIG. 5, a reference numeral 210 designates a stepping motor that drives the rotary member 27. A pinion gear 211 is fixed to a distal end of a shaft of the stepping motor 210. The stepping motor 210 is mounted on the motor mounting portion 29 c of the pressing member 29.
The pinion gear 11 is extended out through the hole portion 29 b of the pressing member 29 and engaged with the gear portion 27 i of the rotary member 27.
In the light amount adjustment apparatus, the pressing member 29 is fixed to the cam member 28 with the rotary member 27 and the light-shielding blade members 21 to 26 interposed therebetween. Thus, the pressing member 29 prevents the rotary member 27 and the light-shielding blade members 21 to 26 from falling off in the direction of the optical axis.
In the light amount adjustment apparatus, the rotation fit projecting portions 27 h of the rotary member 27 are engaged with and rotatably supported by the aperture 29 a of the pressing member 29. The first shaft portions 21 b to 26 b of the light-shielding blade members 21 to 26 are rotatably supported by the respective shaft hole portions 27 b to 27 g of the rotary member 27. Further, the second shaft portions 21 c to 26 c of the light-shielding blade members 21 to 26 are slidably supported by the respective cam groove portions 28 b to 28 g of the cam member 28.
In the light amount adjustment apparatus, the light-shielding blade members 21 to 26 are spaced equidistantly in a circumferential direction around the optical axis. The light-shielding blade members 21 to 26 are so configured as to be capable of controlling the aperture opening amount by changing states of overlapping of the light-shielding blade base portions 21 a to 26 a, and the greater the amount of overlapping, the smaller the aperture opening amount.
In the light amount adjustment apparatus, by controlling the operation of the stepping motor 210, the aperture opening diameter is changed to adjust the amount of light.
Thus, in the light amount adjustment apparatus, when a control unit, not shown, drives the stepping motor 210, the pinion gear 211 rotates. In response to the rotation of the pinion gear 211, the rotary member 27 rotates to rotatively drive the first shaft portions 21 b to 26 b of the light-shielding blade members 21 to 26 about the optical axis.
With this operation, the second shaft portions 21 c to 26 c are moved along the cam groove portions 28 b to 28 g of the cam member 28. This operation causes the second shaft portions 21 c to 26 c to relatively rotate about the shaft hole portions 27 b to 27 g of the rotary member 27, whereby the amount of entry into the aperture 28 a is changed.
The six light-shielding blade members 21 to 26 operate to change the aperture opening diameter at the same time in synchronization with the rotary member 27. In this operation in which the aperture opening diameter is changed, the aperture opening diameter is continuously changed from a retracted state in which the light-shielding blade members 21 to 26 are retracted from the aperture 28 a of the cam member 28 to an inserted state in which the light-shielding blade members 21 to 26 are inserted into the aperture 28 a of the cam member 28. In the above described way, in the light amount adjustment apparatus, by controlling the operation of the stepping motor 210, the aperture opening diameter is changed to adjust the amount of light.
Next, a method of manufacturing the light-shielding blade members according to the second embodiment will be described.
A base material for the blade base portions 21 a to 26 a of the light-shielding blade members 21 to 26 is a resin material such as polyethylene terephthalate, and they are formed by punching a thin flat plate material in which an additive such as carbon black is mixed as appropriate so as to make the blade base portions 21 a to 26 a light-shielding.
For the thin flat plate materials for the blade base portions 21 a to 26 a formed by punching, blasting as post-processing is performed on an end portion 21 d of the blade base portion which is a part forming an aperture diameter.
It should be noted that blasting performed here is a process in which nonmetallic particles or metallic particles are caused to collide with the light-shielding blade member end portion 21 d as a material to be cut so that the light-shielding blade member end portion 21 d can be surface-roughened or lightly cut. Particularly in the present embodiment, blasting is performed using wet blasting. Wet blasting is a machining method that surface roughening or light cutting is performed by projecting nonmetallic particles or metallic particles using spray droplets formed by applying the pressure of compressed air or the like to a liquid such as water.
To perform blasting as post-processing on the light-shielding blade member end portion 21 d of the light-shielding blade members 21 to 26, first, the blade base portion 21 a as a material to be cut is fixed on a plane of a fixing jig 212 such that a beam incidence plane of the light-shielding blade member 21 is faced up as shown in FIG. 7. On this occasion, the plane of the fixing jig 212 on which the light-shielding blade member 21 is fixed is exposed outside the light-shielding blade member end portion 21 d of the light-shielding blade members 21. As a result, a corner part indicated as a region A in FIG. 7 is formed by a light-shielding blade end face 21 e (see FIG. 8) and the plane of the fixing jig 212. Blasting is then performed in which spray droplets containing nonmetallic particles or metallic particles are sprayed obliquely downward in a direction indicated by an arrow B in FIG. 7 at high pressure onto the light-shielding blade member end portion 21 d so that the light-shielding blade member end portion 21 d can be surface-roughened or lightly cut. Here, the direction indicated by the arrow B is a direction that is tilted at a predetermined angle from a direction perpendicular to the plane of the fixing jig 212 to a direction in which the plane of the fixing jig 212 is exposed.
Here, because the blade base portion 21 a is formed by punching, a burr 21 h formed due to a shearing force on one side of a punching end face in a part of the light-shielding blade member end portion 21 d which corresponds to the inner periphery of the aperture through which light can pass. For this reason, the blade base portion 21 a is fixed on the fixing jib 212 in such an orientation that the burr 21 h in the part of the light-shielding blade member end portion 21 d which corresponds to the inner periphery of the aperture through which light can pass is cut away.
By performing blasting in this state using wet blasting, the light-shielding blade member end portion 21 d of the light-shielding blade members 21 to 26 is formed with an oblique portion 21 f that has the surface thereof roughened and is tilted relative to the optical axis as shown in FIG. 8B by machining. Also, the burr 21 h is cut away. Thus, when the blade base portions 21 a to 26 a are formed with the oblique portion 21 f and the light-shielding end face 21 g by blasting, the burrs 21 h to 26 h formed during punching can be removed at the same time.
In the case where the light-shielding blade member end portion 21 d is machined into the oblique portion 21 f having the surface thereof roughened and tilted relative to the optical axis in the above described way, undesired light can be prevented from being reflected and causing ghosts, flare, and so on.
Moreover, the region A shown in FIG. 7 is a region that is not subjected to blasting during machining by blasting using wet blasting. This is because in the corner part formed by the end face 21 e of the blade base portion and the plane of the fixing jib 212, the flow rate of spray droplets projecting abrasives such as nonmetallic particles and metallic particles is low, and the power of machining on the light-shielding blade end face 21 e is low.
This region that is not subjected to blasting is the corner part formed by the light-shielding blade end face 21 e and the plane of the fixing jig 212. This region is not subjected to blasting because the flow rate of spray droplets projecting nonmetallic particles or metallic particles is low, and the power of machining on the light-shielding blade end face 21 e is low.
After undergoing blasting shown in FIG. 7, the light-shielding blade member end portion 21 d has a form partially cut away by blasting as shown in FIG. 8B. Specifically, in the part of the light-shielding blade member end portion 21 d, the oblique portion 21 f is newly formed in a range between the plane of the blade base portion 21 a and the light-shielding blade end face 21 e. At the same time, in the part of the light-shielding blade member end portion 21 d, the light-shielding blade end face 21 g that is a part of the light-shielding blade end face 21 e is newly formed.
The light-shielding blade end face 21 e has a shape formed with low machining power resulting from a low flow rate of spray droplets in the region A in FIG. 7. The newly formed light-shielding blade end face 21 g substantially maintains the outside dimensions of the blade base portion 21 a. Namely, in the case where blasting is performed as shown in FIG. 7, a desired shape shown in FIG. 8B can be obtained without loss of the dimensional accuracy of the light-shielding blade end face 21 e.
Moreover, blasting has a surface roughing effect. Thus, both the oblique portion 21 f and the newly formed light-shielding blade end face 21 g have the surfaces thereof roughened as distinct from the properties of the light-shielding blade end face 21 e that was a smooth surface before blasting. It should be noted that the light-shielding blade end face 21 e before blasting is also a plane that, when assembled as it is into the light amount adjustment apparatus, causes ghosts, flare, and so on because it is parallel with the optical axis and acts as a reflection surface for undesired light.
Then, the blade base portion 21 a becomes the light-shielding blade member 21 after undergoing a step in which the first shaft portion 21 b and the second shaft portion 21 c are formed.
Moreover, the light-shielding blade members 22 to 26 are formed similarly to the above described light-shielding blade member 21 and incorporated into the light amount adjustment apparatus according to the second embodiment.
In the light amount adjustment apparatus, the blade base portion end face 21 g parallel with the optical axis and located in the aperture formed by the light-shielding blade members 21 to 26 subjected to blasting is relatively small and has the surface thereof roughened. Namely, the blade base portion end face 21 g is smaller than the blade base portion end face 21 e as a smooth surface before machining, and has the surface thereof roughened. For this reason, in the light adjustment apparatus, undesired reflection on the light-shielding blade end faces which could cause degradation in image quality such as flare and ghosts can be reduced.
Also, the burrs 21 h to 26 h formed when the blade base portions 21 a to 26 a are formed by punching can also be processed at the same time by blasting.
Other Embodiments
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all such modifications and equivalent structures and functions.
This application claims the benefit of Japanese Patent Application No. 2009-206845 filed Sep. 8, 2009, which is hereby incorporated by reference herein in its entirety.

Claims (8)

What is claimed is:
1. A light amount adjustment apparatus comprising:
a driving source; and
a plurality of light-shielding blade members to which a driving force of said driving source is transmitted to change an aperture diameter,
wherein said light-shielding blade members are formed by injection molding of a light-shielding resin material, and
wherein by performing blasting on an end face of said light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of said light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.
2. A light amount adjustment apparatus comprising:
a driving source; and
a plurality of light-shielding blade members to which a driving force of said driving source is transmitted to change an aperture diameter,
wherein said light-shielding blade members are formed by punching a light-shielding plate material, and
wherein by performing blasting on an end face of said light-shielding blade member in a part that forms the aperture diameter, an aperture end face whose surface is roughened while substantially maintaining outside dimensions of said light-shielding blade member is formed, and an oblique portion tilted relative to the aperture end face is formed.
3. A method of manufacturing a light-shielding blade member, comprising:
a step of performing injection molding of a light-shielding resin material;
a step of fixing, on a fixing member, a light-shielding blade member formed by injection molding of the resin material in said injection molding step; and
a step of performing blasting on an end face of the fixed light-shielding blade member in a part that forms an aperture diameter,
wherein when fixing, on the fixing member, the light-shielding blade member formed by injection molding, the light-shielding blade member formed by injection molding is fixed on the fixing member such that the fixing member is exposed outside the part of the light-shielding blade member formed by injection molding which forms the aperture diameter.
4. A method of manufacturing a light-shielding blade member according to claim 3,
wherein when performing blasting, nonmetallic particles or metallic particles are caused to collide from a direction tilted at a predetermined angle from a direction perpendicular to a plane of the fixing member to a direction in which the plane of the fixing member is exposed.
5. A method of manufacturing a light-shielding blade member according to claim 4,
wherein the blasting comprises wet blasting.
6. A method of manufacturing a light-shielding blade member, comprising:
a step of punching a light-shielding plate material;
a step of fixing, on a fixing member, a light-shielding blade member formed by punching the plate material in said pinching step; and
a step of performing blasting on an end face of a part of the fixed light-shielding blade member which forms an aperture diameter,
wherein when fixing, on the fixing member, the light-shielding blade member formed by punching, the light-shielding blade member formed by punching is fixed on the fixing member such that the fixing member is exposed outside the part of the light-shielding blade member formed by punching which forms the aperture diameter.
7. A method of manufacturing a light-shielding blade member according to claim 6,
wherein when performing blasting, nonmetallic particles or metallic particles are caused to collide from a direction tilted at a predetermined angle from a direction perpendicular to a plane of the fixing member to a direction in which the plane of the fixing member is exposed.
8. A method of manufacturing a light-shielding blade member according to claim 7,
wherein the blasting is blasting using wet blasting.
US12/874,733 2009-09-08 2010-09-02 Light amount adjustment apparatus having plurality of plate-like light-shielding blade members and method of manufacturing the light-shielding blade members Expired - Fee Related US8405894B2 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2009-206845 2009-09-08
JP2009206845A JP5517533B2 (en) 2009-09-08 2009-09-08 Shielding blade member and method for manufacturing shielding blade member

Publications (2)

Publication Number Publication Date
US20110058242A1 US20110058242A1 (en) 2011-03-10
US8405894B2 true US8405894B2 (en) 2013-03-26

Family

ID=43647565

Family Applications (1)

Application Number Title Priority Date Filing Date
US12/874,733 Expired - Fee Related US8405894B2 (en) 2009-09-08 2010-09-02 Light amount adjustment apparatus having plurality of plate-like light-shielding blade members and method of manufacturing the light-shielding blade members

Country Status (3)

Country Link
US (1) US8405894B2 (en)
JP (1) JP5517533B2 (en)
CN (1) CN102012603B (en)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8783977B2 (en) * 2011-07-07 2014-07-22 Canon Denshi Kabushiki Kaisha Light-quantity control apparatus and optical apparatus
US11226539B2 (en) * 2019-06-28 2022-01-18 Samsung Electro-Mechanics Co., Ltd. Aperture module and camera module including the same

Families Citing this family (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP6030846B2 (en) * 2012-04-18 2016-11-24 ニスカ株式会社 Manufacturing method of diaphragm blades
JP6685040B2 (en) * 2015-11-24 2020-04-22 カムイ・イノベーション株式会社 Ghost reduction device, image pickup apparatus including the same, ghost reduction method, and image pickup optical system
JP6694617B2 (en) * 2018-06-15 2020-05-20 株式会社ニチベイパーツ Method for manufacturing camera diaphragm blades
TWI676852B (en) * 2018-10-31 2019-11-11 白金科技股份有限公司 Sunshade
EP4026650B1 (en) 2019-09-30 2025-07-23 Polyplastics Co., Ltd. Resin molded article having matte surface, and method for forming matte surface on resin molded article
TWI707169B (en) * 2019-11-29 2020-10-11 大立光電股份有限公司 Imaging lens assembly, camera module and electronic device
JP7478599B2 (en) * 2020-06-12 2024-05-07 マクセル株式会社 Lens unit, camera module, aperture member and manufacturing method thereof
TWI815645B (en) * 2022-08-26 2023-09-11 大立光電股份有限公司 Variable aperture module, imaging lens module and electronic device

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5025278A (en) * 1988-06-17 1991-06-18 Nikon Corporation Plate for light shielding blade
US5731016A (en) * 1993-05-07 1998-03-24 Nikon Corporation Apparatus for manufacturing a diaphragm blade
JP2002229095A (en) 2001-02-06 2002-08-14 Nidec Copal Corp Diaphragm blade
US6858959B2 (en) * 2001-09-28 2005-02-22 Canon Kabushiki Kaisha Motor and light amount adjusting apparatus
JP2006084658A (en) 2004-09-15 2006-03-30 Canon Inc Light shielding blade member for light intensity adjustment
US7290947B2 (en) * 2004-08-13 2007-11-06 Nisca Corporation Light controller and image pickup device including the same
US7699546B2 (en) * 2007-01-12 2010-04-20 Sony Corporation Light amount adjusting device and image capture apparatus
US20100195182A1 (en) * 2008-07-01 2010-08-05 Seiko Precision Inc. Speed reducing mechanism, drive device, and optical instrument
US7907321B2 (en) * 2007-02-08 2011-03-15 Canon Kabushiki Kaisha Light-amount adjusting apparatus, optical apparatus, and method for manufacturing the light-amount adjusting apparatus

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP3437117B2 (en) * 1999-04-21 2003-08-18 日本電産コパル株式会社 Shading vane and method of manufacturing the same
JP4902384B2 (en) * 2007-02-08 2012-03-21 キヤノン株式会社 A light amount adjusting device, an optical apparatus, and a method for manufacturing the light amount adjusting device.

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5025278A (en) * 1988-06-17 1991-06-18 Nikon Corporation Plate for light shielding blade
US5731016A (en) * 1993-05-07 1998-03-24 Nikon Corporation Apparatus for manufacturing a diaphragm blade
JP2002229095A (en) 2001-02-06 2002-08-14 Nidec Copal Corp Diaphragm blade
US6858959B2 (en) * 2001-09-28 2005-02-22 Canon Kabushiki Kaisha Motor and light amount adjusting apparatus
US7290947B2 (en) * 2004-08-13 2007-11-06 Nisca Corporation Light controller and image pickup device including the same
JP2006084658A (en) 2004-09-15 2006-03-30 Canon Inc Light shielding blade member for light intensity adjustment
US7699546B2 (en) * 2007-01-12 2010-04-20 Sony Corporation Light amount adjusting device and image capture apparatus
US7907321B2 (en) * 2007-02-08 2011-03-15 Canon Kabushiki Kaisha Light-amount adjusting apparatus, optical apparatus, and method for manufacturing the light-amount adjusting apparatus
US8184354B2 (en) * 2007-02-08 2012-05-22 Canon Kabushiki Kaisha Light-amount adjusting apparatus, optical apparatus, and method for manufacturing the light-amount adjusting apparatus
US20100195182A1 (en) * 2008-07-01 2010-08-05 Seiko Precision Inc. Speed reducing mechanism, drive device, and optical instrument

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8783977B2 (en) * 2011-07-07 2014-07-22 Canon Denshi Kabushiki Kaisha Light-quantity control apparatus and optical apparatus
US11226539B2 (en) * 2019-06-28 2022-01-18 Samsung Electro-Mechanics Co., Ltd. Aperture module and camera module including the same

Also Published As

Publication number Publication date
CN102012603B (en) 2013-01-02
JP2011059237A (en) 2011-03-24
JP5517533B2 (en) 2014-06-11
US20110058242A1 (en) 2011-03-10
CN102012603A (en) 2011-04-13

Similar Documents

Publication Publication Date Title
US8405894B2 (en) Light amount adjustment apparatus having plurality of plate-like light-shielding blade members and method of manufacturing the light-shielding blade members
JP4902384B2 (en) A light amount adjusting device, an optical apparatus, and a method for manufacturing the light amount adjusting device.
US8764321B2 (en) Restricting blade, light quantity adjusting device, optical apparatus, and method for manufacturing restricting blade
JP4845768B2 (en) Diaphragm blade, method of manufacturing the diaphragm blade, and light amount adjusting device including the diaphragm blade
JP2012053494A (en) Lens barrel
JP2008203576A (en) Light amount adjusting device and optical apparatus
CN1216317C (en) focal plane shutter for cameras
US20130273477A1 (en) Guide apparatus, exposure apparatus, and method of manufacturing article
JP2004138865A (en) Diaphragm device, imaging apparatus, and manufacturing method for diaphragm device
US20220035228A1 (en) A Suspension System for Adjusting Projected Light Images
JP5178216B2 (en) Light amount adjusting device and camera
JP7066376B2 (en) Aperture device, lens device and image pickup device
JP2015072419A (en) Light quantity controlling device, and optical device and imaging device having the same
EP1830208B1 (en) ZOOM LENS DEVICE with a Geneva mechanism
JP2012166211A (en) Cylindrical workpiece cutting apparatus
KR101082848B1 (en) Diaphragm device having optical filter
JP2023100341A (en) Bead core coating equipment
JP5201891B2 (en) Light amount adjusting blade and light amount adjusting device
JP5251399B2 (en) Aperture device and lens barrel
JP5417679B2 (en) Lens barrel, camera system
JPH1172684A (en) Lens barrel
WO2006137362A1 (en) Cam drive mechanism, lens barrel, and camera
WO2012128202A1 (en) Lens device
JP2003202612A (en) Filter for quantity-of-light adjustment and quantity-of- light adjusting device and method of manufacturing the same
JP2007140250A (en) Aperture device for taking lens

Legal Events

Date Code Title Description
AS Assignment

Owner name: CANON KABUSHIKI KAISHA, JAPAN

Free format text: ASSIGNMENT OF ASSIGNORS INTEREST;ASSIGNOR:SAITO, JUNICHI;REEL/FRAME:025542/0678

Effective date: 20100831

STCF Information on status: patent grant

Free format text: PATENTED CASE

FPAY Fee payment

Year of fee payment: 4

FEPP Fee payment procedure

Free format text: MAINTENANCE FEE REMINDER MAILED (ORIGINAL EVENT CODE: REM.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

LAPS Lapse for failure to pay maintenance fees

Free format text: PATENT EXPIRED FOR FAILURE TO PAY MAINTENANCE FEES (ORIGINAL EVENT CODE: EXP.); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

STCH Information on status: patent discontinuation

Free format text: PATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362

FP Lapsed due to failure to pay maintenance fee

Effective date: 20210326